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Maybe I have missed something, but what are wrong with this regular expresion?

var str = "lorem ipsum 12345 dolor";
var x = /\d+/.exec(str);
var y = /\d*/.exec(str);
console.log(x); // will print 12345
console.log(y); // will print "" but why ? 

Can you please explain why /\d*/.exec(str); returns an empty string instead of "12345". * means zero or more number of matches.

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1  
According to regexpal.com, using "lorem ipsum 12345 dolor" and "\d*" as the string/regex, it matches just fine... What language are you using your regex in? –  Nightfirecat Jul 28 '11 at 20:27
    
@Nightfirecat - That looks like JavaScript. –  Justin Morgan Jul 28 '11 at 20:33

2 Answers 2

up vote 6 down vote accepted

\d* matches zero or more digits in a row. When you run exec on a regex, it starts at the beginning of the input and returns the first instance it finds of your given pattern.

So where is the first instance of \d* in that string? Well, it's the first position in the string that has zero or more numbers after it. But they all have zero or more numbers after them! Either there are numbers there, or there aren't, but either way it matches. So the first instance of \d* is simply a zero-length substring beginning at the first position in the string.

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Thanks a lot, this explains everything. –  alagar Jul 29 '11 at 8:48
    
@Tim Pietzcker - Thanks for catching my typo! –  Justin Morgan Jul 29 '11 at 14:01

* matches zero or more. Maybe I'm wrong, but wouldn't this match zero digits starting at "lorem", hence the empty string?

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1  
No, you're not wrong. ;) –  Alan Moore Jul 29 '11 at 6:45

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